[0001] The present invention relates to a controller which is capable of preventing a user
from being cooled too much when an air conditioner is under cooling mode, in particular
while he or she is asleep.
[0002] Referring to Figure 6, there is shown a conventional air conditioner controller.
In Figure 6, reference numeral 1 designates a compressor. Reference numeral 2 designates
a four port reversing valve. Reference numeral 3 designates an outdoor heat exchanger.
Reference numeral 4 designates a throttle expansion device. Reference numeral 5 designates
an indoor heat exchanger. Reference numeral 6 designates an outdoor fan. Reference
numeral 7 designates an indoor fan. These devices 1-7 are arranged in that order.
[0003] Reference numeral 8 designates an auxiliary heater.
[0004] Near to the indoor heat exchanger 5 is arranged a thermistor 9 which detects a room
temperature, and which is connected to an electrical control circuit 10 together with
the auxiliary heater 8.
[0005] Reference numeral 11 designates a desired temperature input device, through which
a desired room temperature can inputted. Reference numerals 12 and 13 designate a
user A and a user B, respectively.
[0006] The operation of the conventional controller will be explained.
[0007] During cooling, a high temperature and high pressure refrigerant gas which has been
discharged from the compressor 1 passes through the four port reversing valve 2, and
enters the outdoor heat exchanger 3.
[0008] In the outdoor heat exchanger 3, the refrigerant gas is heat exchanged by the outdoor
fan 6. Then the refrigerant gas enters the indoor heat exchanger 5 through the throttle
expansion device 4, is heat exchanged by the indoor fan 7, flows into the four port
reversing valve 2 again, and returns to the compressor 1.
[0009] Now, a room temperature control in the refrigeration cycle will be explained referring
to the flowchart of Figure 7.
[0010] When the cooling operation is turned on at Step 20, the program proceeds to Step
21, where a desired temperature t
1 is inputted into the electrical control circuit 10 through the desired temperature
input device 11.
[0011] At next Step 22, an actual room temperature t
2 is read into the electrical control circuit 10 through the room temperature detecting
thermistor 9.
[0012] At next Step 23, it is determined whether the inequality t
1 > t
2 is satisfied or not. If affirmative, or if the actual room temperature is the desired
room temperature or less (which means that it too cool), the heater 8 is turned on
to increase the room temperature at Step 24. If negative, the heater 8 is turned off
at Step 25.
[0013] Then the program proceeds to Step 26, where it is determined whether the cooling
operation should be continued or not. If affirmative, the program returns to Step
21.
[0014] An air conditioner which is provided with such auxiliary heater 8 has been known
in e.g. Japanese Examined Patent Publication No. 25049/1986.
[0015] With the conventional air conditioner controller constructed as mentioned above,
the actual room temperature can be equally maintained. However, the conventional controller
involves a problem in that when there are a plurality of persons in a room to be air
conditioned, a desired temperature which is comfortable to one of them may be a temperature
which the other person(s) feels cold or uncomfortable. This is because a desired comfortable
temperature varies depending on persons.
[0016] US-A-4543796 describes an air conditioner which comprises: a plurality of heating
elements; -desired temperature input means for inputting a desired temperature; and
auxiliary heating element control means for separately controlling the auxiliary heating
elements based on the desired temperatures which have been inputted in the desired
temperature input means.
[0017] The air conditioning system has a temperature sensor at the air outlet into the room,
which ensures that the air discharged into the room can never be excessively cold.
This is achieved by overriding the normal control system for the entire volume of
air discharged. It is not possible to provide air streams of different temperature
selectively during cooling operation.
[0018] The system can also be operated in a heating mode. For use in this mode, auxiliary
electric heating elements are provided. These heating elements can be energized selectively
in order to provide a desired outlet temperature, but each heating element heats the
entire volume of air discharged into the room. It is not possible to produce different
discharge air temperatures in different regions of the room.
[0019] It is an object of the present invention to provide an air conditioner controller
which allows a plurality of persons in a room to obtain respective comfortable temperatures
simultaneously.
[0020] The present invention provides an air conditioner according to claim 1.
[0021] The plural auxiliary heating elements are separately controlled by the auxiliary
heating element control means to feed conditioned air in such manner that the control
temperatures of the conditioned air are different from one portion thereof to another,
so as to be suitable to the inputted desired temperatures. This arrangement allows
different persons in the room to receive their own comfortable air, thereby offering
the advantage that comfortable air conditioning can be obtained in such manner that
individual persons will not feel too cool during cooling operation.
[0022] In a preferred embodiment, the auxiliary heating elements are arranged to separately
heat different portions of conditioned air fed by a fan of the air conditioner.
[0023] The auxiliary heating elements may be arranged to be opposite to different portions
of a fan of the air conditioner.
[0024] In another preferred embodiment, the air conditioner comprises a fan for simultaneously
feeding conditioned air, the controlled temperatures of which are different depending
on portions thereof.
[0025] The desired temperature input means is preferably constituted by a plurality of desired
temperature input units to separately control the auxiliary heating elements.
[0026] The auxiliary heating element control means may control the auxiliary heating elements
separately one after another.
[0027] Preferably, the auxiliary heating element control means further separately controls
the auxiliary heating elements based on conditioned air temperatures which are detected
by a plurality of temperature sensors located near to an outlet port of the air conditioner.
[0028] The auxiliary heating element control means may have a separate control mode and
a collective control mode, which are selectable by a user, the separate control mode
for separately controlling the auxiliary heating elements (as aforesaid, and the collective
control mode for collectively controlling the auxiliary heating elements.
[0029] In the accompanying drawings: -
Figure 1 is a schematic diagram showing the air conditioner according to an embodiment
of the present invention;
Figure 2 is a flowchart to help explain the operation of the embodiment;
Figures 3 and 4 are an exploded perspective view and a cross sectional view of an
air conditioner which has auxiliary heating elements arranged behind an indoor heat
exchanger in accordance with the embodiment;
Figure 5 is a cross sectional view of an air conditioner which has auxiliary heating
elements arranged in an outlet port in accordance with the embodiment;
Figure 6 is a schematic diagram showing a conventional air conditioner controller;
and
Figure 7 is a flowchart to help explain the operation of the conventional air conditioner
controller.
[0030] Preferred embodiments of the present invention will be described with reference to
the drawings.
[0031] Referring now to Figures 1 and 2, there is shown the air conditioner according to
an embodiment of the present invention. In Figure 1, reference numeral 1 designates
a compressor. Reference numeral 2 designates a four port reversing valve. Reference
numeral 3 designates an outdoor heat exchanger. Reference numeral 4 designates a throttle
expansion device. Reference numeral 5 designates an indoor heat exchanger. Reference
numeral 6 designates an outdoor fan. Reference numeral 7 designates an indoor fan.
Reference numeral 8 designates auxiliary heating means which heats conditioned air
to be blown off from an air conditioner (not shown), and which is divided into two
parts across the width of the indoor heat exchanger 5 to form a first auxiliary heating
element 8a and a second auxiliary heating element 8b.
[0032] Reference numeral 9 designates room temperature detecting means which detects room
temperatures at locations near to an outlet port (not shown), which is arranged to
correspond to the first and second auxiliary heating elements 8a and 8b across the
width of the indoor heat exchanger 5, and which is constituted by a first room temperature
detecting thermistor 9a and a second room temperature detecting thermistor 9b.
[0033] Reference numeral 10 designates an electrical control circuit which controls the
operation of the air conditioner (not shown), and to which the first and second auxiliary
heating elements 8a and 8b, the first room and second temperature detecting thermistors
9a and 9b and the like are connected.
[0034] Reference numeral 11 designates desired temperature input means through which desired
temperatures can be inputted, and which is constituted by a first desired room temperature
input unit 11a and a second desired room temperature input unit 11b. The input units
can transmit signals indicative of the desired temperatures to the electrical control
circuit 10 by use of e.g. remote control system (not shown).
[0035] Reference numerals 12 and 13 designate a first user and a second user, respectively,
who are in a room to be air conditioned. The first user 12 is at the side of the first
auxiliary heating element 8a, and the second user 13 is at the side of the second
auxiliary heating element 8b.
[0036] Reference numeral 14 designates auxiliary heating element control means which can
be constituted by a microcomputer(not shown) and soon in the electrical control circuit
10. Based on the desired room temperatures which have been inputted through the input
units 11a and 11b, the desired room temperatures are compared to corresponding detection
temperatures which are detected by the first and second thermistors 9a and 9b. An
on and off control is separately carried out in energisation of the first and second
auxiliary heating elements 8a and 8b to adjust the temperatures of conditioned air,
thereby to bring the detected room temperatures near the corresponding desired temperatures.
[0037] The auxiliary heating element control means 14 may carry out a collective control
wherein the on and off operations of the auxiliary heating elements (8b, 8b) are collectively
controlled. The present invention is applicable to a case wherein the separate control
and the collective control can be selected.
[0038] The operation of the embodiment will be explained referring to the flow chart of
Figure 2.
[0039] If a cooling operation is turned on at Step 30, the program proceeds to Step 31.
[0040] At Step 31, it is determined whether the users 12 and 13 of the air conditioner have
turned on a "separate air conditioning mode" switch (not shown) which means that the
auxiliary heating elements are separately controlled. If affirmative, the program
proceeds to Step 32, where the first user 12 uses the first input unit 11a to input
a desired temperature t
1a into the auxiliary heating elements control means 14 of the electrical control circuit
10.
[0041] Likewise, the second user 13 uses the second input unit 11b to input a desired temperature
t
1b into the auxiliary heating element control means 14 of the electrical control circuit
10.
[0042] At next Step 33, the first and second thermistors 9a and 9b detect actual room temperatures
t
2a and t
2b, and transmit signals indicative of the detected actual room temperatures to the
auxiliary heating element control means 14.
[0043] At next Step 34, the actual room temperature t
2a is compared to the desired room temperature t
1a of the first user 12. If t
1a > t
2a (which means that it is too cool) the first auxiliary heating element 8a is turned
on at Step 35 to increase the temperature of the conditioned air at the side of the
first user 12, thereby raising the room temperature at the side of the first user
12.
[0044] If t
1a < t
2a (which means that it is warm), the first auxiliary heating element 8a is turned
off to decrease the room temperature at the side of the first user 12, thereby carrying
out such temperature control that the first user 12 can obtain a comfortable temperature.
[0045] At Steps 37 through Steps 39 as well, a similar temperature control is carried out
to control the second auxiliary heating element 8b to give the second user 13 to a
comfortable temperature.
[0046] At Step 40, it is determined whetherthe operation should be continued or not If affirmative,
the program returns to Step 30.
[0047] Although the explanation on the embodiment as stated earlier has been made for the
case wherein the first user 12 is at the side of the first auxiliary heating element
8a and the second user 13 is at the side of the second auxiliary heating element 8b,
the present invention is applicable to the case wherein the location of the first
user 12 and the location of the second user 13 with respect to the air conditioner
are automatically detected by use of a sensor or the like, and the on and off control
is accordingly carried out forthe first and second heating elements 8a and 8b, thereby
offering an advantage in that the operation can be made in an easy and precise manner.
[0048] In order to carry out the room temperature control, a finer voltage control for energisation
of the auxiliary heating means 8, which has for example a strong mode, an intermediate
mode, a weak mode and an off mode, may be done instead of the on and off control.
[0049] Although the explanation on the embodiment stated earlier has been made for the case
wherein the cooling operation is carried out, the present invention is applicable
to a case wherein during heating as well the auxiliary heating means 8 is used to
adjust partly the temperature of heated air, thereby offering an advantage in that
heating can be carried out to match with comfortable temperatures of a plurality of
users.
[0050] The auxiliary heating elements can be arranged behind the indoor heat exchanger as
shown in Figures 3 and 4.
[0051] The auxiliary heating elements may be arranged in the outlet port in the air conditioner,
as shown in fig 5.
1. A room air conditioner comprising a housing, air-cooling means in the housing, means
(7) for discharging cooled air from the housing through an outlet port into the room
to be air-conditioned, means (9, 10, 11) for controlling the temperature of the discharged
air, and auxiliary heating means (8) placed in the air discharge stream in the housing,
characterized in that
the auxiliary heating means comprises a plurality of independently controllable additional
auxiliary heating elements (8a, 8b) which are arranged to heat different portions
of the air discharge stream; and in that
it comprises user-operable desired temperature input means (11) for inputting a plurality
of desired discharge air temperatures; and
auxiliary heating element control means (14) for separately controlling the auxiliary
heating elements (8a, 8b) based on the desired temperatures which have been inputted
in the desired temperature input means (11) whereby the air conditioner can discharge
simultaneously through the outlet port air stream portions of different temperatures.
2. An air conditioner according to Claim 1, characterized in that the means for discharging
cooled air into the room is a fan (7) and the auxiliary heating elements (8a, 8b)
are arranged to be opposite to different portions of the fan (7).
3. An air conditioner according to Claim 1, characterized in that the means for discharging
cooled air into the room is a fan (7) for simultaneously feeding conditioned air,
the controlled temperatures of which are different depending on portions thereof.
4. An air conditioner according to Claim 1, 2 or 3 characterized in that the desired
temperature input means (11) is constituted by a plurality of desired temperature
input units (11a, 11b) to separately control the auxiliary heating elements (8a, 8b).
5. An air conditioner according to Claim 1, 2 or 3 characterized in that the auxiliary
heating element control means (14) controls the auxiliary heating elements (8a, 8b)
separately one after another.
6. An air conditioner according to any preceding Claim, characterized in that the auxiliary
heating element control means (14) further separately controls the auxiliary heating
elements (8a, 8b) based on conditioned air temperatures which are detected by a plurality
of temperature sensors (9a, 9b) located near to outlet port of the air conditioner.
7. An air conditioner according to any preceding Claim, characterized in that the auxiliary
heating element control means (14) has a separate control mode and a collective control
mode, which are selectable by a user, the separate control mode for separately controlling
the auxiliary heating elements (8a, 8b) as aforesaid, and the collective control mode
for collectively controlling the auxiliary heating elements (8a, 8b)
1. Raumklimaanlage mit einem Gehäuse, einer Luftkühleinrichtung (5) im Gehäuse, einer
Einrichtung (7) zum Ausgeben gekühlter Luft durch eine Auslassöffnung aus dem Gehäuse
in den zu klimatisierenden Raum, einer Einrichtung (9, 10, 11) zum Regeln der Temperatur
der ausgegebenen Luft, und mit einer im Auslassstrom im Gehäuse angeordneten Hilfsheizeinrichtung
(8);
dadurch gekennzeichnet, dass:
- die Hilfsheizeinrichtung mehrere unabhängig regelbare zusätzliche Hilfsheizelemente
(8a, 8b) aufweist, die so ausgebildet sind, dass sie verschiedene Teile des Luftauslassstroms
beheizen, und dass sie eine vom Benutzer betätigbare Solltemperatur-Eingabeeinrichtung
(11) zum Eingeben mehrerer gewünschter Temperaturen für die Ausgabeluft aufweist;
und
- eine Hilfsheizelement-Regelungseinrichtung (14) zum getrennten Regeln der Hilfsheizelemente
(8a, 8b) auf Grundlage der gewünschten Temperaturen, die in die Solltemperatur-Eingabeeinrichtung
(11) eingegeben wurden, vorhanden ist, wodurch die Klimaanlage gleichzeitig durch
die Auslassöffnungen Teilluftströme mit verschiedenen Temperaturen ausgeben kann.
2. Klimaanlage nach Anspruch 1, dadurch gekennzeichnet, dass die Einrichtung zum Ausgeben gekühlter Luft in den Raum ein Lüfter (7) ist und die
Hilfsheizelemente (8a, 8b) so angeordnet sind, dass sie verschiedenen Abschnitten
des Lüfters (7) gegenüberstehen.
3. Klimaanlage nach Anspruch 1, dadurch gekennzeichnet, dass die Einrichtung zum Ausgeben gekühlter Luft einen Lüfter (7) zum gleichzeitigen Zuführen
klimatisierter Luft aufweist, die bereichsabhängig verschiedene geregelte Temperaturen
aufweist.
4. Klimaanlage nach einem der Ansprüche 1, 2 oder 3, dadurch gekennzeichnet, dass die Solltemperatur-Eingabeeinrichtung (11) durch mehrere Solltemperatur-Eingabeeinheiten
(lla, llb) gebildet wird, um die Hilfsheizelemente (8b) getrennt zu regeln.
5. Klimaanlage nach einem der Ansprüche 1, 2 oder 3, dadurch gekennzeichnet, dass die Hilfsheizelement-Regelungseinrichtung (14) die Hilfsheizelemente (8a, 8b) getrennt
nacheinander regelt.
6. Klimaanlage nach einem der vorstehenden Ansprüche, dadurch gekennzeichnet, dass die Hilfsheizelement-Regelungseinrichtung (14) ferner die Hilfsheizelemente (8a,
8b) getrennt auf Grundlage der Temperaturen der klimatisierten Luft regelt, die durch
mehrere Temperatursensoren (9a, 9b) erfasst werden, die nahe bei der Auslassöffnung
der Klimaanlage angeordnet sind.
7. Klimaanlage nach einem der vorstehenden Ansprüche, dadurch gekennzeichnet, dass die Hilfsheizelement-Regelungseinrichtung (14) einen Getrenntregelungsmodus und einen
Sammelregelungsmodus aufweist, die von einem Benutzer wählbar sind, wobei der Getrenntregelungsmodus
dazu dient, die Hilfsheizelemente (8a, 8b) wie vorstehend genannt getrennt zu regeln,
und der Sammelregelungsmodus dazu dient, die Hilfsheizelemente (8a, 8b) gemeinsam
zu regeln.
1. Conditionneur d'air pour une pièce comprenant, une enceinte, des moyens de refroidissement
d'air (5) situés dans l'enceinte, des moyens (7) pour décharger l'air refroidi de
l'enceinte à travers un orifice de décharge dans la pièce dont l'air doit être conditionné,
des moyens (9, 10, 11) pour commander la température de l'air déchargé, et des moyens
de chauffage auxiliaires (8) placés dans le courant de décharge d'air dans l'enceinte,
caractérisé en ce que
les moyens de chauffage auxiliaires comprennent une multiplicité d'éléments de chauffage
auxiliaires supplémentaires (8a, 8b), aptes à être commandés indépendamment, qui sont
disposés de façon à chauffer différentes parties du courant de décharge d'air; et
en ce qu'il comprend
des moyens d'entrée de température voulue (11), actionnables par l'utilisateur, pour
introduire une multiplicité de températures d'air de décharge voulues; et
des moyens de commande d'éléments de chauffage auxiliaires (14) pour commander séparément
les éléments de chauffage auxiliaires (8a, 8b) sur la base des températures voulues
qui ont été introduites dans les moyens d'entrée de température voulue (11), si bien
que le conditionneur d'air peut décharger simultanément à travers l'orifice de décharge
des parties de courants d'air dont les températures sont différentes.
2. Conditionneur d'air selon la revendication 1, caractérisé en ce que les moyens pour
décharger l'air refroidi dans la pièce sont constitués par un ventilateur (7) et les
éléments de chauffage auxiliaires (8a, 8b) sont disposés de façon à être en regard
de différentes parties du ventilateur (7).
3. Conditionneur d'air selon la revendication 1, caractérisé en ce que les moyens pour
décharger l'air refroidi dans la pièce sont constitués par un ventilateur (7) pour
envoyer simultanément de l'air conditionné, dont les températures commandées diffèrent
suivant ses parties.
4. Conditionneur d'air selon l'une quelconque des revendications 1, 2 et 3, caractérisé
en ce que les moyens d'entrée de température voulue (11) sont constitués par une multiplicité
d'unités d'entrée de température voulue (lla, llb) pour commander séparément les éléments
de chauffage auxiliaires (8a, 8b).
5. Conditionneur d'air selon l'une quelconque des revendications 1, 2 et 3, caractérisé
en ce que les moyens de commande d'éléments de chauffage auxiliaires (14) commandent
les éléments de chauffage auxiliaires (8a, 8b) séparément, l'un après l'autre.
6. Conditionneur d'air selon l'une quelconque des revendications précédentes, caractérisé
en ce que, en outre, les moyens de commande d'éléments de chauffage auxiliaires (14)
commandent séparément les éléments de chauffage auxiliaires (8a, 8b) sur la base des
températures de l'air conditionné qui sont détectées par une multiplicité de détecteurs
de température (9a, 9b) situés au voisinage de l'orifice de décharge du conditionneur
d'air.
7. Conditionneur d'air selon l'une quelconque des revendications précédentes, caractérisé
en ce que les moyens de commande d'éléments de chauffage auxiliaires (14) comportent
un mode de commande séparée et un mode de commande collective, qui peuvent être sélectionnés
par un utilisateur, le mode de commande séparée servant à commander séparément les
éléments de chauffage auxiliaires (8a, 8b) comme il est dit précédemment, et le mode
de commande collective servant à commander collectivement les éléments de chauffage
auxiliaires (8a, 8b).